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Joint Position and Beamforming Control via Alternating Nonlinear Least-Squares with a Hierarchical Gamma Prior

机译:通过在先前具有分层伽马的交替非线性最小二乘的接合位置和波束形成控制

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We consider the problem of controlling antennae gains and positions among a set collection of mobile beamforming agents. Existing approaches predominately fall into two categories: solvers based upon convex relaxations of subset selection, and Monte Carlo sampling approaches that seek close-to-exact solutions, whose consistency requires the number of samples to approach infinity. In this work, we adopt an approach that improves upon the accuracy of prevailing convex relaxation approaches, motivated by their relative computational efficiency. Specifically, for fixed pose, we develop a modified hierarchical prior which is well-known within Bayesian inference to promote sparsity more effectively than the conventional Gaussian-gamma prior. Then, with this specification, we develop a variant of Expectation Maximization (EM) whose updates can be evaluated in closed form to obtain the beamforming gains and set of active agents. Then, when the signal phase and and amplitude are fixed, we propose a projected block descent approach, i.e., alternating nonlinear least-squares, for efficient relocation of the pruned set of agents. The inter-weaved iterative approach presented here better synthesizes the desired beam pattern with the minimum set of active agents and demands less computational load compared to the dense grid search implementations. Preliminary results indicate the proposed approach attains a superior tradeoff of sparsification and accuracy as compared to existing approaches.
机译:我们考虑控制天线收益和位置集合集合集合的问题。现有方法主要是分为两类:求解器基于凸面的子集选择,以及寻求近精确解决方案的蒙特卡罗采样方法,其一致性需要采样的数量接近无穷大。在这项工作中,我们采用了一种方法,即通过其相对计算效率而推动普遍凸松弛方法的准确性。具体地,对于固定姿势,我们开发了一种修改的分层之前,在贝叶斯推理中众所周知的众所周知,以促进比传统的高斯-Gamma先前更有效的稀疏性。然后,利用本规范,我们开发了期望最大化的变体(EM),其更新可以以封闭形式评估,以获得波束成形增益和一组有源代理。然后,当信号相位和幅度被固定时,我们提出了一种投影的块滴定方法,即交替的非线性最小二乘性,用于有效地重新定位所修剪的代理。呈现的互相迭代方法更好地合成了与最小一组有源代理的所需光束图案,并与密度网格搜索实现相比要求较少的计算负荷。初步结果表明,与现有方法相比,拟议的方法达到了疲劳和准确性的卓越权衡。

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